
The olfactory-jump response assay was used to analyze habituation in Drosophila mutants of potassium (K(+)) channel subunits. As with physiological assays of the giant fiber-mediated escape reflex, mutations at loci that encode K(+) channel subunits have distinct effects on habituating the olfactory-jump response. The data for slowpoke and ether à go-go indicate similar effects on habituation of the olfactory-jump response and the giant fiber-mediated escape. Habituation in the olfactory jump assay in Hyperkinetic and Shaker mutants was drastically different from the degree of defect in the giant fiber-mediated escape reflex, indicating differential control mechanisms underlying the two forms of non-associative conditioning.
Smell, Drosophila melanogaster, Neuronal Plasticity, Potassium Channels, Conditioning, Classical, Mutation, Animals, Drosophila Proteins, Genes, Insect, Habituation, Psychophysiologic
Smell, Drosophila melanogaster, Neuronal Plasticity, Potassium Channels, Conditioning, Classical, Mutation, Animals, Drosophila Proteins, Genes, Insect, Habituation, Psychophysiologic
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